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Integrated Sensing and Communication with MOCZ Waveform
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In this work, we propose a waveform based on Modulation on Conjugate-reciprocal Zeros (MOCZ) originally proposed for short-packet communications in [1], as a new Integrated Sensing and Communication (ISAC) waveform. Having previously established the key advantages of MOCZ for noncoherent and sporadic communication, here we leverage the optimal auto-correlation property of Binary MOCZ (BMOCZ) for sensing applications. Due to this property, which eliminates the need for separate communication and radar-centric waveforms, we propose a new frame structure for ISAC, where pilot sequences and preambles become obsolete and are completely removed from the frame. As a result, the data rate can be significantly improved. Aimed at (hardware-) cost-effective radar-sensing applications, we consider a Hybrid Digital-Analog (HDA) beamforming architecture for data transmission and radar sensing. We demonstrate via extensive simulations, that a communication data rate, significantly higher than existing standards can be achieved, while simultaneously achieving sensing performance comparable to state-of-the-art sensing systems.
Forward citations
Cited by 2 Pith papers
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A Smooshed BMOCZ Zero Constellation for CFO Estimation Without Channel Coding
SBMOCZ modifies the BMOCZ zero phases so a receiver can estimate CFO from the location of a magnitude peak on the unit circle, without channel coding.
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Fourier-Domain CFO Estimation Using Jutted Binary Modulation on Conjugate-Reciprocal Zeros
J-BMOCZ adds one asymmetric zero to BMOCZ and estimates CFO by template matching in the Fourier domain, avoiding cyclically permutable codes.
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